Efrén López-Morales (New Mexico State University)

Ransomware has yet to reach orbit, but the conditions for such an attack already exist. This paper presents the first game-theoretic framework for modeling ransomware against satellites: the orbital escalation game. In this model, the attacker escalates ransom demands across orbital passes, while the defender chooses their best strategy, e.g., attempt a restore procedure. Using dynamic programming, we solve the defender’s optimal strategy and the attacker’s expected payoff under real orbital constraints. Additionally, we provide a GPS III satellite case study that demonstrates how our orbital escalation game can be applied in the context of a fictional but feasible ransomware attack to derive the best strategies at every step. In conclusion, this foundational model offers satellite owners, policy makers and researchers, a formal framework to better prepare their responses when a spacecraft is held for ransom.

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Sohom Datta (North Carolina State University), Michalis Diamantaris (Technical University of Crete), Ahsan Zafar (North Carolina State University), Junhua Su (North Carolina State University), Anupam Das (North Carolina State University), Jason Polakis (University of Illinois Chicago), Alexandros Kapravelos (North Carolina State University)

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SAGA: A Security Architecture for Governing AI Agentic Systems

Georgios Syros (Northeastern University), Anshuman Suri (Northeastern University), Jacob Ginesin (Northeastern University), Cristina Nita-Rotaru (Northeastern University), Alina Oprea (Northeastern University)

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